Method of making cutting tool inserts with high demands on dimensional accuracy
A method of making cutting tool inserts with high demands on dimensional accuracy includes: mixing by milling of powders forming hard constituents and binder phase, forming the powder mixture to bodies of desired shape, sintering the formed bodies, grinding with high accuracy the sintered bodies to inserts with desired shape and dimension, optionally edge rounding of cutting edges, and providing the ground inserts with a wear resistant non-diamond or non-diamond-like coating. According to the method, the ground inserts are heat treated prior to the coating operation in an inert atmosphere or vacuum or other protective atmosphere below the solidus of the binder phase for such a time that the micro structure of the surface region is restructured without causing significant dimensional changes. In this way inserts with unexpected improvement of tool life and dimensional accuracy have been achieved.
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1. Field of the Invention
The present invention relates to a method which improves the strength of the surface and edge of tools with high demands on dimensional accuracy for metal cutting applications. Such inserts are normally ground to desired dimension. Inserts for threading are an example, but the method is not limited to that type of metal cutting application. By heat treating the inserts after grinding them to final shape and dimension an unexpected increase in tool life has been obtained.
2. Description of the Related Art
Metal cutting by the use of coated cemented carbide or cermet tools is today the most commonly material in today's metal working industry. It is performed with high productivity and by the use of indexable inserts with cutting edges in the shape of the appropriate form. An example of a threading insert is shown in
U.S. Pat. No. 5,068,148 discloses a tool insert including a tungsten carbide based cemented carbide substrate and a diamond coating deposited thereon. For manufacturing the insert, a compact is first sintered to provide a tungsten carbide based cemented carbide substrate. Subsequently, the substrate is ground and then heat-treated at a temperature between 1000° C. and 1600° C. in vacuum or in a non-oxidizing atmosphere. Subsequently, a diamond coating is formed on the substrate by vapor-deposition method.
U.S. Pat. No. 5,701,578 discloses a method of making a coated insert comprising the steps of: providing a sintered substrate that includes hard grains bonded together by metallic binder, removing material from the sintered substrate to form an as-ground substrate, reducing the residual stresses in the substrate, resintering the substrate, and depositing a diamond layer thereon.
U.S. Pat. No. 5,066,553 discloses a surface-coated tool insert which has a tungsten carbide based cemented carbide substrate and a hard coating formed thereon. The coating may have one or more layers. The cobalt content of the substrate in a surface portion at a depth of about 2 μm from a surface thereof is less than that in an interior portion at a depth of about 100 μm from said surface by at least 10%. It is produced by the steps of:
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- preparing a tungsten carbide based cemented carbide substrate by conventional means,
- grinding said substrate to impart stress to tungsten carbide grains near the surface of said substrate and to partly crush the tungsten carbide grains into smaller grains,
- heat-treating said cemented carbide at a temperature of no less than the WC—Co eutectic temperature to recrystallize the tungsten carbide grains and
- forming a hard coating on said substrate by chemical vapour deposition.
EP 1247879 provides an uncoated insert for turning of titanium. By using inserts with a reduced length of primary land compared to prior art an unexpected increase in tool life and productivity has been obtained. Said positive results are further improved by subjecting the inserts to an additional heat treatment after grinding to final shape and dimension.
SUMMARY OF THE INVENTIONIt is an object of the present invention to provide inserts with high demands on dimensional accuracy with improved performance.
It has now been found that if inserts are subjected to a heat treatment below the solidus of the binder after the grinding operation an unexpected increase in tool life and no significant geometric distortions are achieved.
The invention thus relates to a method of making cemented carbide or cermet inserts with high demands on dimensional accuracy, such as threading inserts, comprising hard constituents and binder phase by
-
- mixing by milling of powders forming hard constituents and binder phase,
- forming the powder mixture to bodies of desired shape,
- sintering the formed bodies,
- grinding with high accuracy the sintered bodies to inserts with desired shape and dimension,
- possibly edge rounding of cutting edges,
- heat treating the ground inserts in an inert atmosphere or vacuum or other protective atmosphere below the solidus of the binder phase for such a time that the micro structure of the surface region is restructured without causing significant dimensional changes, preferably at temperatures of 1050-1250° C., most preferably at 1150°-1250° C., and preferably for 30-120 min, most preferably for 60-90 min.
- providing the ground and heat treated inserts with a non-diamond or non-diamond-like wear resistant coating.
The invented method can be applied to all kinds of cemented carbides or cermets. It is particularly useful for cemented carbides having a composition of 3-15, preferably 5-13 wt-% Co, up to 25 wt-%, preferably 0-15 wt-%, one or more of the cubic carbide forming elements from groups IVb, Vb and VIb of the periodic table, preferably Ti, Nb and/or Ta.
The wear resistant coating can be deposited with either Physical Vapour Deposition (PVD) or Chemical Vapour Deposition (CVD) known in the art, preferably by arc evaporation PVD technique. In one embodiment the coating comprises at least one layer of (Ti1-xAlx)N, where 0.4<x<0.7 with a thickness of 1-5 μm. In another embodiment the coating comprises at least one layer of Al2O3, preferably of the α-phase, said layer with a thickness of 1-15 μm. In a preferred embodiment the coating comprises a layer of cubic carbonitride in the form of TiCxNyOz and a layer of a metal oxide in the form of Al2O3 with a total coating thickness of 2-25 μm.
Inserts made according to the present invention are useful for all kinds of machining operations with high demands on dimensional accuracy, preferably threading operations. It is particularly useful for demanding operations of threading gas tight pipes for oil and gas applications.
EXAMPLE 1Cemented carbide threading insert of type Seco Tools 5-1113, see
Inserts from example 1 were heat treated according to the invention at 1200° C. for 1.4 h in argon atmosphere at 1000 mbar.
A 2 μm thick (Ti0.34Al0.66)N layer was deposited, using arc evaporation of a TiAl cathode in reactive N2 atmosphere at a total pressure of 4.0 Pa. The inserts were negatively biased at −110 V during deposition. The deposition temperature was about 400° C.
Inserts from example 1 were heat treated according to the invention at 1240° C. for 1 h in vacuum.
A CVD coating consisting of 4 μm Ti(C,N)+3 μm α-Al2O3 layer was deposited. The deposition temperature was about 850° C. during deposition of Ti(C,N) and 1030° C. during deposition of Al2O3.
EXAMPLE 4A 2 μm thick (Ti0.34Al0.66)N layer was deposited on inserts from example 1, using arc evaporation of a TiAl cathode in reactive N2 atmosphere at a total pressure of 4.0 Pa. The inserts were negatively biased at −110 V during deposition. The deposition temperature was about 400° C.
Inserts from Example 1 were heat treated at 1400° C. for 1 h in argon atmosphere at 40 mbar. The heat treatment resulted in that the inserts were outside the geometrical tolerances.
EXAMPLE 6The adhesion between coating and substrate of inserts from example 2 and 4 was determined by Rockwell A indentation tests.
Coated inserts from Example 2, 3 and 4 were tested with regard to tool life at the following conditions: Example 4 is the present state of the art and serves as reference.
Cutting data:
Rotation speed: n=380 rev/min
Cutting speed: vc=233 m/min
Feed: f=5.080 mm/rev
Application Internal threading
Tool: Seco 5-1113
Work piece:
Diameter: ∅192.87-∅196.40 mm
Length L=254.50 mm
Material: L80-1 (API-standard)
Hardness: 750 N/mm2
Results:
The tool life criterion was the maximum time in cut in minutes at a cutting speed of 233 m/min chipping or fracture of a cutting tooth were the typical reasons for failure.
Example 2 (PVD-coated): Average insert lifetime: 31 parts (6 inserts tested)
Example 3 (CVD-coated): Average insert lifetime: 29 parts (4 inserts tested)
Example 4 (Reference PVD-coated): Average insert lifetime: 9 parts (6 inserts tested)
This test shows that the inserts according to the invention can more than triple the tool life compared to the state of the art.
Claims
1. A method of making cemented carbide or cermet inserts comprising ceramic constituents and a metallic binder phase, the ceramic constituents being harder than the metallic binder phase, comprising:
- mixing by milling of powders forming the ceramic constituents and the metallic binder phase;
- forming the powder mixture to bodies of desired shape,
- sintering the formed bodies;
- grinding the sintered bodies to inserts to a desired shape and dimension;
- optionally edge rounding of cutting edges;
- heat treating the ground inserts in an inert atmosphere or vacuum or other protective atmosphere below a solidus of the binder phase for such a time that a micro structure of a surface region is restructured without causing significant dimensional changes; and
- following the heat treating, coating the heat treated inserts to provide a non-diamond or non-diamond-like coating.
2. The method according to claim 1, wherein the heat treating is at temperatures of 1050-1250° C. for 30-120 min.
3. The method according to claim 2, wherein the cemented carbide has a composition of 3-15 wt-% Co, up to 25 wt-% of one or more of cubic carbide forming elements from groups IVb, Vb and VIb of the periodic table.
4. The method according to claim 2, wherein the coating comprises at least one layer of (Ti1-xAlx)N, where 0.4<x<0.7 with a thickness of 1-5 μm deposited by PVD.
5. The method according to claim 2, wherein the coating comprises at least one layer of Al2O3, said layer with a thickness of 1-15 μm deposited by CVD.
6. The method according to claim 1, wherein the cemented carbide has a composition of 3-15 wt-% Co, and up to 25 wt-% of one or more of cubic carbide forming elements from groups IVb, Vb and VIb of the periodic table.
7. The method according to claim 6, wherein the coating comprises at least one layer of (Ti1-xAlx)N, where 0.4<x<0.7 with a thickness of 1-5 μm deposited by PVD.
8. The method according to claim 6, wherein the coating comprises at least one layer of Al2O3, said layer with a thickness of 1-15 μm deposited by CVD.
9. The method according to claim 1, wherein the coating comprises at least one layer of (Ti1-xAlx)N, where 0.4<x<0.7 with a thickness of 1-5 μm deposited by PVD.
10. The method according to claim 1, wherein the coating comprises at least one layer of Al2O3, said layer with a thickness of 1-15 μm deposited by CVD.
11. The method according to claim 10, wherein the Al2O3 is α-phase Al2O3.
12. The method according to claim 1, wherein the inserts are threading inserts.
13. The method according to claim 1, wherein the heat treating is at temperatures of 1150° -1250° C. for 60-90 min.
14. The method according to claim 1, wherein the cemented carbide has a composition of 5-13 wt-% Co, and up to 15 wt-%, of one or more of cubic carbide forming elements selected from the group consisting of Ti, Nb and Ta.
15. A method of making cemented carbide or cermet inserts, comprising:
- providing a sintered substrate formed from a metallic binder phase and a ceramic;
- grinding the sintered substrate to inserts to a desired shape and dimension;
- heat treating the ground inserts in an inert atmosphere or vacuum or other protective atmosphere at a temperature below a solidus of the metallic binder phase at a temperature of 1050-1250° C. for such a time that a micro structure of a surface region is restructured without causing significant dimensional changes; and
- following the heat treating, coating the heat treated inserts to provide a non-diamond or non-diamond-like coating.
16. The method according to claim 15, wherein the ceramic has a grain size of about 1 μm.
17. The method according to claim 15, wherein the heat treating is for 30-120 min.
18. The method according to claim 15, wherein the cemented carbide has a composition of 3-15 wt-% Co, and up to 25 wt-% of one or more of cubic carbide forming elements from groups IVb, Vb and VIb of the periodic table.
19. The method according to claim 15, wherein the coating comprises at least one layer of (Ti1-xAlx)N, where 0.4<x<0.7 with a thickness of 1-5 μm deposited by PVD.
20. The method according to claim 15, wherein the coating comprises at least one layer of Al2O3, said layer with a thickness of 1-15 μm deposited by CVD.
5066553 | November 19, 1991 | Yoshimura et al. |
20030075016 | April 24, 2003 | Uenosono et al. |
20050117984 | June 2, 2005 | Eason et al. |
20070110607 | May 17, 2007 | Iwasaki et al. |
20070218242 | September 20, 2007 | Moriguchi et al. |
20080224344 | September 18, 2008 | Westergren et al. |
20080292737 | November 27, 2008 | Banerjee |
20110320037 | December 29, 2011 | Frugone |
20120093597 | April 19, 2012 | Ederyd |
1 247 879 | October 2002 | EP |
5195223 | August 1993 | JP |
10225804 | August 1998 | JP |
2003247006 | September 2003 | JP |
- Cha, Seung I., et al., “Microstructures of binderless tungsten carbides sintered by spark plasma sintering process”. Materials Science and Engineering A356 (2003) 381-389.
- Mizukami, Yoshiaki, et al., “Fabrication of Cemented Carbide Molds with Internal Cooling Channels Using Hybrid Process of Powder Layer Compaction and Milling”. Materials Transactions, vol. 46, No. 11 (2005) pp. 2497-2503.
- International Search Report, dated Apr. 1, 2010 from corresponding PCT application.
Type: Grant
Filed: Dec 9, 2009
Date of Patent: Aug 20, 2013
Patent Publication Number: 20110244129
Assignee: Seco Tools AB (Fagersta)
Inventors: Bo Jansson (Ramsberg), Jacob Sjolen (Fagersta)
Primary Examiner: Bret Chen
Application Number: 13/139,119
International Classification: C23C 16/30 (20060101);